US20180119845A1 - Sensor connection structure - Google Patents
Sensor connection structure Download PDFInfo
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- US20180119845A1 US20180119845A1 US15/851,581 US201715851581A US2018119845A1 US 20180119845 A1 US20180119845 A1 US 20180119845A1 US 201715851581 A US201715851581 A US 201715851581A US 2018119845 A1 US2018119845 A1 US 2018119845A1
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- main pipe
- sensors
- terminal unit
- connection boxes
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- 239000012530 fluid Substances 0.000 claims description 3
- 238000004891 communication Methods 0.000 description 10
- 238000001514 detection method Methods 0.000 description 8
- 238000012806 monitoring device Methods 0.000 description 8
- 238000000034 method Methods 0.000 description 5
- 230000005540 biological transmission Effects 0.000 description 4
- 238000009434 installation Methods 0.000 description 3
- 230000002159 abnormal effect Effects 0.000 description 1
- 230000005494 condensation Effects 0.000 description 1
- 238000009833 condensation Methods 0.000 description 1
- 238000010586 diagram Methods 0.000 description 1
- 238000007599 discharging Methods 0.000 description 1
- 230000001771 impaired effect Effects 0.000 description 1
- 238000012423 maintenance Methods 0.000 description 1
- 238000012544 monitoring process Methods 0.000 description 1
- 238000012546 transfer Methods 0.000 description 1
- 238000011144 upstream manufacturing Methods 0.000 description 1
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16T—STEAM TRAPS OR LIKE APPARATUS FOR DRAINING-OFF LIQUIDS FROM ENCLOSURES PREDOMINANTLY CONTAINING GASES OR VAPOURS
- F16T1/00—Steam traps or like apparatus for draining-off liquids from enclosures predominantly containing gases or vapours, e.g. gas lines, steam lines, containers
- F16T1/38—Component parts; Accessories
- F16T1/48—Monitoring arrangements for inspecting, e.g. flow of steam and steam condensate
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K37/00—Special means in or on valves or other cut-off apparatus for indicating or recording operation thereof, or for enabling an alarm to be given
- F16K37/0075—For recording or indicating the functioning of a valve in combination with test equipment
- F16K37/0083—For recording or indicating the functioning of a valve in combination with test equipment by measuring valve parameters
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- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05B—CONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
- G05B19/00—Programme-control systems
- G05B19/02—Programme-control systems electric
- G05B19/04—Programme control other than numerical control, i.e. in sequence controllers or logic controllers
- G05B19/042—Programme control other than numerical control, i.e. in sequence controllers or logic controllers using digital processors
-
- G—PHYSICS
- G05—CONTROLLING; REGULATING
- G05B—CONTROL OR REGULATING SYSTEMS IN GENERAL; FUNCTIONAL ELEMENTS OF SUCH SYSTEMS; MONITORING OR TESTING ARRANGEMENTS FOR SUCH SYSTEMS OR ELEMENTS
- G05B23/00—Testing or monitoring of control systems or parts thereof
- G05B23/02—Electric testing or monitoring
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01B—CABLES; CONDUCTORS; INSULATORS; SELECTION OF MATERIALS FOR THEIR CONDUCTIVE, INSULATING OR DIELECTRIC PROPERTIES
- H01B7/00—Insulated conductors or cables characterised by their form
- H01B7/17—Protection against damage caused by external factors, e.g. sheaths or armouring
Definitions
- the present application relates to a sensor connection structure for connecting, to a terminal unit, a plurality of sensors disposed in a pipe unit including a main pipe and a plurality of branch pipes.
- Japanese Patent No. 5674190 describes a sensor connection structure disposed in a pipe unit (manifold).
- the pipe unit includes a main pipe and a plurality of branch pipes connected to the left and right of the main pipe.
- Each of the branch pipes is provided with a valve such as a steam trap.
- drain (condensate) generated by condensation of steam flows from the branch pipes into the main pipe and is collected therein.
- the sensor connection structure includes a plurality of sensors disposed on the steam traps and a terminal unit disposed on the main pipe. Each of the sensors detects operating states (vibrations and temperature) of a corresponding one of the steam traps.
- the sensors are connected to the terminal unit by electric wires (lead wires), and information on the operating states detected by the sensors is sent to the terminal unit.
- the terminal unit transmits and receives information on the operating states to/from a central management device. In this manner, the operating states of the steam traps are monitored.
- the terminal unit is connected to the sensors by electric wires so that wiring to the terminal unit might become complex.
- a technique disclosed in the present application has been made in view of the foregoing situations, and has an object to provide a sensor connection structure that can ensure transmission, to a terminal unit, of information on operating states detected by a plurality of sensors while reducing complexity of wiring between the sensors and the terminal unit.
- connection boxes connected in series are disposed on a main pipe of a pipe unit, and a plurality of sensors are connected to a terminal unit through the connection boxes.
- the technique disclosed in the present application is based on a sensor connection structure configured to be disposed in a pipe unit including a main pipe, a plurality of branch pipes connected to each of left and right of the main pipe, and a plurality of valves disposed on the branch pipes and configured to allow fluid to flow in the pipe unit.
- the sensor connection structure includes a plurality of sensors, a plurality of connection boxes, and a terminal unit.
- the plurality of sensors are respectively disposed on the plurality of valves and are used for detecting operating states of the valves.
- the plurality of connection boxes are arranged along an axis of the main pipe, connected to each other in series through electric wire pipes, and connected to the plurality of sensors through electric wire pipes.
- the terminal unit is connected to one of the plurality of connection boxes through an electric wire pipe.
- the electric wire pipes are pipes housing electric wires (lead wires) therein.
- the serially connected connection boxes are connected to the sensors, and one of the connection boxes is connected to the terminal unit. That is, in the sensor connection structure according to the aspect of the present application, the sensors are connected to one of the serially connected connection boxes, and one connection box is connected to the terminal unit. Accordingly, it is possible to reduce complexity of wires (pipes) between the sensors and the terminal unit.
- the connection boxes can be sequentially connected to the main pipe along the axis of the main pipe.
- wires (pipes) between the connection boxes and the terminal unit can be made compact, and thus, complexity of wires (pipes) can be further reduced.
- the sensors, the connection boxes, and the terminal unit are connected to each other through electric wire pipes.
- FIG. 1 is a front view schematically illustrating a general configuration of a manifold and an operating state monitoring device according to a first embodiment.
- FIG. 2 is a block diagram illustrating a general configuration of a sensor connection structure according to the first embodiment.
- FIG. 3 is a perspective view illustrating the general configuration of the manifold and the operating state monitoring device according to the first embodiment when viewed from the front.
- FIG. 4 is a perspective view illustrating a general configuration of a manifold and an operating state monitoring device according to a second embodiment when viewed from the rear.
- FIG. 5 is a front view schematically illustrating a general configuration of a manifold and an operating state monitoring device according to another embodiment.
- a manifold 1 includes a main pipe 2 and a plurality of (eight in this embodiment) branch pipes 3 , and constitutes a pipe unit in which drain (condensate) flows.
- This manifold 1 is provided with an operating state monitoring device 10 having a sensor connection structure 11 according to claims of the present application.
- the main pipe 2 extends vertically, and four branch pipes 3 are connected to each of the left and right of the main pipe 2 .
- Each of the branch pipes 3 has a diameter smaller than that of the main pipe 2 .
- the branch pipes 3 are arranged along the axis of the main pipe 2 (i.e., in the vertical direction) at each of the left and right of the main pipe 2 .
- the branch pipes 3 extend horizontally from the main pipe 2 in such a manner that left and right branch pipes 3 are opposed to each other. As indicated by arrows in FIG.
- the main pipe 2 constitutes collecting pipes for drain.
- Each of the branch pipes 3 is provided with four valves. Specifically, in each of the branch pipes 3 , an inlet valve 5 , a steam trap 4 , an outlet valve 6 , and an inlet valve 7 are arranged in this order from the upstream side.
- the steam trap 4 is used for automatically discharging only inflow drain to the downstream side.
- Each of the two inlet valves 5 and 7 and the outlet valve 6 is a shut-off valve.
- a blow down valve 8 is disposed at the lower end of the main pipe 2 .
- the manifold 1 is supported by an attachment base 9 .
- the attachment base 9 includes a base plate 9 a and a strut 9 b .
- the base plate 9 a is a portion to be grounded.
- the strut 9 b extends vertically from the upper surface of the base plate 9 .
- the strut 9 b is a so-called channel having a U-shaped cross section.
- the manifold 1 is supported by attaching the main pipe 2 to the front side (surface side) of the strut 9 b . That is, the strut 9 b is disposed at the rear side of the main pipe 2 (at the back in the drawing sheet of FIG. 1 ).
- the operating state monitoring device 10 monitors operating states of the plurality of (eight) steam traps 4 .
- the operating state monitoring device 10 includes the sensor connection structure 11 disposed in the manifold 1 and the central management device 30 disposed in another place.
- the sensor connection structure 11 includes a plurality of (eight in this embodiment) sensors 12 , a plurality of (four in this embodiment) connection boxes 13 , and one terminal unit 20 .
- Each of the sensors 12 is attached to an associated one of the eight steam traps 4 .
- the sensors 12 detect operating states (e.g., vibrations and temperature) of the steam traps 4 , and are of a wired communication type.
- the sensors 12 are disposed at inlet portions of the steam traps 4 .
- connection boxes 13 are disposed at the front side of the main pipe 2 (at the front in the drawing sheet of FIG. 1 ).
- the four connection boxes 13 are arranged along the axis of the main pipe 2 , and are connected to each other in series through electric wire pipes 15 .
- Each of the four connection boxes 13 is associated with two sensors 12 that are respectively located at the left and right of the main pipe 2 , and is connected to these two sensors 12 through electric wire pipes 14 . That is, each of the four connection boxes 13 is connected to one sensor 12 at the left of the main pipe 2 and one sensor 12 at the right of the main pipe 2 .
- the connection boxes 13 include attachment bases 13 a attached to the main pipe 2 with U bolts 9 c.
- the terminal unit 20 is connected to one of the four connection boxes 13 through an electric wire pipe 15 .
- the terminal unit 20 is disposed above the four connection boxes 13 at the front side of the main pipe 2 .
- the terminal unit 20 is connected to the uppermost one of the four connection boxes 13 through the electric wire pipe 15 , and is connected to the central management device 30 through the electric wire pipe 31 . That is, as also illustrated in FIG. 2 , the terminal unit 20 and the four connection boxes 13 are connected together in series.
- detection information of the sensors 12 is transmitted to the terminal unit 20 through the connection boxes 13 .
- the electric wire pipes 14 , 15 , and 31 house electric wires (lead wires) therein, and serve as pipes protecting the wires.
- the terminal unit 20 includes a digital circuit unit 21 , an analog circuit unit 22 , a communication unit 24 , a power control unit 25 , a power supply battery 26 , a memory unit 27 , and a warning lamp 28 .
- the detection information of the sensors 12 described above is transmitted (input) to the analog circuit unit 22 .
- the communication unit 24 transmits and receives information to/from the central management device 30 through the electric wire pipe 31 .
- the power supply battery 26 supplies electric power to the digital circuit unit 21 , and supplies electric power to the communication unit 24 and the analog circuit unit 22 through the power control unit 25 .
- the power control unit 25 controls electric power to be supplied to the communication unit 24 and the analog circuit unit 22 .
- the memory unit 27 stores information.
- the digital circuit unit 21 controls the power control unit 25 to change the analog circuit unit 22 from a sleep mode to an operating mode. Then, the analog circuit unit 22 sequentially receives detection information of the eight sensors 12 by an input switching circuit 23 . When this input is completed, the digital circuit unit 21 controls the power control unit 25 to change the analog circuit unit 22 to the sleep mode again. The detection information of the sensors 12 input to the analog circuit unit 22 is processed in the digital circuit unit 21 .
- the digital circuit unit 21 controls the power control unit 25 to change the communication unit 24 from the sleep mode to the operating mode, transmits the processed detection information of the sensors 12 from the communication unit 24 to the central management device 30 , and receives instruction information from the central management device 30 through the communication unit 24 .
- the digital circuit unit 21 controls the power control unit 25 to change the communication unit 24 to the sleep mode again.
- the central management device 30 determines operating states of the steam traps 4 . Subsequently, the central management device 30 stores results of the determination, and if the steam traps 4 are determined to be abnormal, the central management device 30 instructs the terminal unit 20 to cause the warning lamp 28 to blink. In this manner, operating states of the steam traps 4 are monitored and determined by the operating state monitoring device 10 .
- the serially connected connection boxes 13 are connected to the sensors 12 , and one of the connection boxes 13 is connected to the terminal unit 20 . That is, in this embodiment, a plurality of sensors 12 are connected to each of the serially connected connection boxes 13 , and one of the connection boxes 13 is connected to the terminal unit 20 . Accordingly, it is possible to reduce complexity of wires (pipes) between the sensors 12 and the terminal unit 20 .
- connection boxes 13 are arranged along the axis of the main pipe 2 , the connection boxes 13 can be sequentially connected to the main pipe 2 along the axis of the main pipe 2 . In this manner, wires (pipes) between the connection boxes 13 and the terminal unit 20 can be made compact, and thus, complexity of wires (pipes) can be further reduced.
- the sensors 12 , the connection boxes 13 , and the terminal unit 20 are connected to each other through the electric wire pipes 14 and 15 (electric wires).
- the electric wire pipes 14 and 15 electric wires.
- each of the connection boxes 13 is connected to one of the sensors 12 located at the left of the main pipe 2 and one of the sensors 12 located at the right of the sensors 12 .
- each of the connection boxes 13 is connected to one of the sensors 12 located at the left of the main pipe 2 and one of the sensors 12 located at the right of the sensors 12 .
- the terminal unit 20 since the terminal unit 20 is disposed in the main pipe 2 , complexity of wires (pipes) between the terminal unit 20 and the connection boxes 13 can be reduced. Moreover, since the terminal unit 20 is disposed above the connection boxes 13 and connected to the uppermost one of the four connection boxes 13 , complexity of wires (pipes) described above can be reduced, as compared to a case where the terminal unit is disposed between the connection boxes, for example. In addition, since the terminal unit 20 is disposed above the four connection boxes 13 , the terminal unit 20 can be easily connected to the central management device 30 .
- connection boxes 13 and a terminal unit 20 are changed from those in the sensor connection structure 11 according to the first embodiment.
- the four connection boxes 13 and the terminal unit 20 are attached to the rear side of a strut 9 b . That is, the connection boxes 13 and the terminal unit 20 are disposed at the rear side of a main pipe 2 with the strut 9 b interposed therebetween.
- the four connection boxes 13 are arranged along an axis of the strut 9 b at the rear side of the strut 9 b , and are connected to each other in series through electric wire pipes 15 .
- each of the four connection boxes 13 is connected to two sensors 12 disposed at the left and right of the main pipe 2 through electric wire pipes 14 .
- the terminal unit 20 is disposed above the four connection boxes 13 at the rear side of the strut 9 b .
- the terminal unit 20 is connected to the uppermost one of the four connection boxes 13 through an electric wire pipe, and is connected to a central management device (not shown) through an electric wire pipe 31 .
- connection boxes 13 and the terminal unit 20 are attached to the rear side of the strut 9 b .
- the connection boxes 13 , the terminal unit 20 , and the electric wire pipes 14 and 15 are not easily affected by heat caused by a manifold 1 . That is, although the manifold 1 in which high-temperature drain flows has a relatively high temperature, transfer of this high temperature to the connection boxes 13 , the terminal unit 20 , and other components can be reduced.
- connection boxes 13 and the terminal unit 20 are attached to the rear side of the strut 9 b , the connection boxes 13 and the terminal unit 20 can be disposed at locations where valves such as steam traps 4 are not disposed, and thus, maintenance of the terminal unit 20 and other components can be easily performed.
- connection boxes 13 may be disposed as illustrated in FIG. 5 . That is, eight connection boxes 13 are connected to each other in series through electric wire pipes 15 . Each of the eight connection boxes 13 are connected to one sensor 12 located at the left or right of a main pipe 2 through an electric wire pipe 14 . That is, the same number of connection boxes 13 as that of the sensors 12 are provided, and are connected to the sensors 12 in one-to-one correspondence.
- the terminal unit 20 may be disposed at a location except the main pipe 2 and the strut 9 b .
- the terminal unit may be disposed on the upper surface of the base plate 9 a of the attachment base 9 and connected to the lowermost one of the connection boxes 13 through an electric wire pipe, or may be attached to a structure (e.g., wall or column) except the manifold 1 and connected to one of the connection boxes 13 through an electric wire pipe.
- drain flows from the branch pipes 3 into the main pipe 2 and is collected therein.
- the sensor connection structure 11 according to the present application is also similarly applicable to a manifold in which drain branches from a main pipe to branch pipes.
- the branch pipes are also provided with valves to which sensors are attached.
- the numbers of the branch pipes 3 , the sensors 12 , and the connection boxes 13 are not limited to the numbers described above, and fluid except drain may flow in the manifold 1 .
- the technique disclosed in the present application is useful for a sensor connection structure in which a plurality of sensors disposed in a pipe unit including a main pipe and a plurality of branch pipes are connected to a terminal unit.
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- General Physics & Mathematics (AREA)
- Automation & Control Theory (AREA)
- Testing And Monitoring For Control Systems (AREA)
- Pipeline Systems (AREA)
- Indication Of The Valve Opening Or Closing Status (AREA)
Abstract
Description
- This is a continuation of PCT International Application PCT/JP2016/068973 filed on Jun. 27, 2016. The disclosure of this application including the specifications, the drawings, and the claims are hereby incorporated by reference in its entirety.
- The present application relates to a sensor connection structure for connecting, to a terminal unit, a plurality of sensors disposed in a pipe unit including a main pipe and a plurality of branch pipes.
- Japanese Patent No. 5674190, for example, describes a sensor connection structure disposed in a pipe unit (manifold). The pipe unit includes a main pipe and a plurality of branch pipes connected to the left and right of the main pipe. Each of the branch pipes is provided with a valve such as a steam trap. In the pipe unit, drain (condensate) generated by condensation of steam flows from the branch pipes into the main pipe and is collected therein. The sensor connection structure includes a plurality of sensors disposed on the steam traps and a terminal unit disposed on the main pipe. Each of the sensors detects operating states (vibrations and temperature) of a corresponding one of the steam traps. The sensors are connected to the terminal unit by electric wires (lead wires), and information on the operating states detected by the sensors is sent to the terminal unit. The terminal unit transmits and receives information on the operating states to/from a central management device. In this manner, the operating states of the steam traps are monitored.
- In the sensor connection structure described in Japanese Patent No. 5674190, the terminal unit is connected to the sensors by electric wires so that wiring to the terminal unit might become complex. To avoid this complexity, it is conceivable to perform wireless communication between the terminal unit and the sensors. In this case, however, transmission and reception of radio waves might be difficult in some installation conditions of the terminal unit and the sensors, and thus, accuracy in monitoring operating states of the valves might be impaired.
- A technique disclosed in the present application has been made in view of the foregoing situations, and has an object to provide a sensor connection structure that can ensure transmission, to a terminal unit, of information on operating states detected by a plurality of sensors while reducing complexity of wiring between the sensors and the terminal unit.
- To achieve the object, in the technique disclosed in the present application, a plurality of connection boxes connected in series are disposed on a main pipe of a pipe unit, and a plurality of sensors are connected to a terminal unit through the connection boxes.
- Specifically, the technique disclosed in the present application is based on a sensor connection structure configured to be disposed in a pipe unit including a main pipe, a plurality of branch pipes connected to each of left and right of the main pipe, and a plurality of valves disposed on the branch pipes and configured to allow fluid to flow in the pipe unit. The sensor connection structure according to an aspect of the present application includes a plurality of sensors, a plurality of connection boxes, and a terminal unit. The plurality of sensors are respectively disposed on the plurality of valves and are used for detecting operating states of the valves. The plurality of connection boxes are arranged along an axis of the main pipe, connected to each other in series through electric wire pipes, and connected to the plurality of sensors through electric wire pipes. The terminal unit is connected to one of the plurality of connection boxes through an electric wire pipe. The electric wire pipes are pipes housing electric wires (lead wires) therein.
- As described above, in the sensor connection structure according to the aspect of the present application, the serially connected connection boxes are connected to the sensors, and one of the connection boxes is connected to the terminal unit. That is, in the sensor connection structure according to the aspect of the present application, the sensors are connected to one of the serially connected connection boxes, and one connection box is connected to the terminal unit. Accordingly, it is possible to reduce complexity of wires (pipes) between the sensors and the terminal unit. In addition, in the sensor connection structure according to the aspect of the present application, since the plurality of connection boxes are arranged along the axis of the main pipe, the connection boxes can be sequentially connected to the main pipe along the axis of the main pipe. In this manner, wires (pipes) between the connection boxes and the terminal unit can be made compact, and thus, complexity of wires (pipes) can be further reduced. Furthermore, in the sensor connection structure according to the aspect of the present application, the sensors, the connection boxes, and the terminal unit are connected to each other through electric wire pipes. Thus, independently of installation situations of the sensors and the terminal unit, information on operating states of the valves detected by the sensors can be transmitted to the terminal unit without fail.
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FIG. 1 is a front view schematically illustrating a general configuration of a manifold and an operating state monitoring device according to a first embodiment. -
FIG. 2 is a block diagram illustrating a general configuration of a sensor connection structure according to the first embodiment. -
FIG. 3 is a perspective view illustrating the general configuration of the manifold and the operating state monitoring device according to the first embodiment when viewed from the front. -
FIG. 4 is a perspective view illustrating a general configuration of a manifold and an operating state monitoring device according to a second embodiment when viewed from the rear. -
FIG. 5 is a front view schematically illustrating a general configuration of a manifold and an operating state monitoring device according to another embodiment. - Embodiments of the present application will be described with reference to the drawings. The following embodiments are merely preferred examples in nature, and are not intended to limit techniques disclosed in this application, applications, and use of the application.
- A first embodiment of the present application will be described with reference to
FIGS. 1 through 3 . As illustrated inFIG. 1 , a manifold 1 according to this embodiment includes amain pipe 2 and a plurality of (eight in this embodiment)branch pipes 3, and constitutes a pipe unit in which drain (condensate) flows. This manifold 1 is provided with an operatingstate monitoring device 10 having asensor connection structure 11 according to claims of the present application. - In the manifold 1, the
main pipe 2 extends vertically, and fourbranch pipes 3 are connected to each of the left and right of themain pipe 2. Each of thebranch pipes 3 has a diameter smaller than that of themain pipe 2. Thebranch pipes 3 are arranged along the axis of the main pipe 2 (i.e., in the vertical direction) at each of the left and right of themain pipe 2. Thebranch pipes 3 extend horizontally from themain pipe 2 in such a manner that left andright branch pipes 3 are opposed to each other. As indicated by arrows inFIG. 1 , in the manifold 1, drain flows into themain pipe 2 through thebranch pipes 3 and is collected therein, and the drain collected in themain pipe 2 is discharged from anoutlet 2 a at the upper end of themain pipe 2. That is, in the manifold 1 according to this embodiment, themain pipe 2 constitutes collecting pipes for drain. - Each of the
branch pipes 3 is provided with four valves. Specifically, in each of thebranch pipes 3, aninlet valve 5, a steam trap 4, anoutlet valve 6, and aninlet valve 7 are arranged in this order from the upstream side. The steam trap 4 is used for automatically discharging only inflow drain to the downstream side. Each of the two 5 and 7 and theinlet valves outlet valve 6 is a shut-off valve. A blow down valve 8 is disposed at the lower end of themain pipe 2. - As illustrated in
FIG. 3 , the manifold 1 according to this embodiment is supported by an attachment base 9. The attachment base 9 includes abase plate 9 a and astrut 9 b. Thebase plate 9 a is a portion to be grounded. Thestrut 9 b extends vertically from the upper surface of the base plate 9. Thestrut 9 b is a so-called channel having a U-shaped cross section. The manifold 1 is supported by attaching themain pipe 2 to the front side (surface side) of thestrut 9 b. That is, thestrut 9 b is disposed at the rear side of the main pipe 2 (at the back in the drawing sheet ofFIG. 1 ). - The operating
state monitoring device 10 monitors operating states of the plurality of (eight) steam traps 4. As illustrated inFIG. 1 , the operatingstate monitoring device 10 includes thesensor connection structure 11 disposed in the manifold 1 and thecentral management device 30 disposed in another place. Thesensor connection structure 11 includes a plurality of (eight in this embodiment)sensors 12, a plurality of (four in this embodiment)connection boxes 13, and oneterminal unit 20. - Each of the
sensors 12 is attached to an associated one of the eight steam traps 4. Thesensors 12 detect operating states (e.g., vibrations and temperature) of the steam traps 4, and are of a wired communication type. Thesensors 12 are disposed at inlet portions of the steam traps 4. - The four
connection boxes 13 are disposed at the front side of the main pipe 2 (at the front in the drawing sheet ofFIG. 1 ). The fourconnection boxes 13 are arranged along the axis of themain pipe 2, and are connected to each other in series throughelectric wire pipes 15. Each of the fourconnection boxes 13 is associated with twosensors 12 that are respectively located at the left and right of themain pipe 2, and is connected to these twosensors 12 throughelectric wire pipes 14. That is, each of the fourconnection boxes 13 is connected to onesensor 12 at the left of themain pipe 2 and onesensor 12 at the right of themain pipe 2. As illustrated inFIG. 3 , theconnection boxes 13 include attachment bases 13 a attached to themain pipe 2 withU bolts 9 c. - The
terminal unit 20 is connected to one of the fourconnection boxes 13 through anelectric wire pipe 15. Specifically, theterminal unit 20 is disposed above the fourconnection boxes 13 at the front side of themain pipe 2. Theterminal unit 20 is connected to the uppermost one of the fourconnection boxes 13 through theelectric wire pipe 15, and is connected to thecentral management device 30 through theelectric wire pipe 31. That is, as also illustrated inFIG. 2 , theterminal unit 20 and the fourconnection boxes 13 are connected together in series. In this manner, in thesensor connection structure 11 disposed in the manifold 1, information on operating states of the steam traps 4 detected by the sensors 12 (hereinafter referred to as detection information of the sensors 12) is transmitted to theterminal unit 20 through theconnection boxes 13. The 14, 15, and 31 house electric wires (lead wires) therein, and serve as pipes protecting the wires.electric wire pipes - As illustrated in
FIG. 2 , theterminal unit 20 includes adigital circuit unit 21, ananalog circuit unit 22, a communication unit 24, apower control unit 25, apower supply battery 26, amemory unit 27, and awarning lamp 28. The detection information of thesensors 12 described above is transmitted (input) to theanalog circuit unit 22. The communication unit 24 transmits and receives information to/from thecentral management device 30 through theelectric wire pipe 31. Thepower supply battery 26 supplies electric power to thedigital circuit unit 21, and supplies electric power to the communication unit 24 and theanalog circuit unit 22 through thepower control unit 25. Thepower control unit 25 controls electric power to be supplied to the communication unit 24 and theanalog circuit unit 22. Thememory unit 27 stores information. - At each set time period or at a set time based on setting information sent from the
central management device 30 and stored in thememory unit 27, thedigital circuit unit 21 controls thepower control unit 25 to change theanalog circuit unit 22 from a sleep mode to an operating mode. Then, theanalog circuit unit 22 sequentially receives detection information of the eightsensors 12 by aninput switching circuit 23. When this input is completed, thedigital circuit unit 21 controls thepower control unit 25 to change theanalog circuit unit 22 to the sleep mode again. The detection information of thesensors 12 input to theanalog circuit unit 22 is processed in thedigital circuit unit 21. Thereafter, thedigital circuit unit 21 controls thepower control unit 25 to change the communication unit 24 from the sleep mode to the operating mode, transmits the processed detection information of thesensors 12 from the communication unit 24 to thecentral management device 30, and receives instruction information from thecentral management device 30 through the communication unit 24. After the transmission and reception, thedigital circuit unit 21 controls thepower control unit 25 to change the communication unit 24 to the sleep mode again. - Based on the detection information of the
sensors 12 transmitted from theterminal unit 20, thecentral management device 30 determines operating states of the steam traps 4. Subsequently, thecentral management device 30 stores results of the determination, and if the steam traps 4 are determined to be abnormal, thecentral management device 30 instructs theterminal unit 20 to cause the warninglamp 28 to blink. In this manner, operating states of the steam traps 4 are monitored and determined by the operatingstate monitoring device 10. - As described above, in the
sensor connection structure 11 according to this embodiment, the serially connectedconnection boxes 13 are connected to thesensors 12, and one of theconnection boxes 13 is connected to theterminal unit 20. That is, in this embodiment, a plurality ofsensors 12 are connected to each of the serially connectedconnection boxes 13, and one of theconnection boxes 13 is connected to theterminal unit 20. Accordingly, it is possible to reduce complexity of wires (pipes) between thesensors 12 and theterminal unit 20. - In addition, in this embodiment, since the
connection boxes 13 are arranged along the axis of themain pipe 2, theconnection boxes 13 can be sequentially connected to themain pipe 2 along the axis of themain pipe 2. In this manner, wires (pipes) between theconnection boxes 13 and theterminal unit 20 can be made compact, and thus, complexity of wires (pipes) can be further reduced. - Moreover, in the
sensor connection structure 11 according to this embodiment, thesensors 12, theconnection boxes 13, and theterminal unit 20 are connected to each other through theelectric wire pipes 14 and 15 (electric wires). Thus, independently of installation situations of thesensors 12 and theterminal unit 20, detection information of thesensors 12 can be transmitted to theterminal unit 20 without fail. In this manner, in this embodiment, it is possible to provide thesensor connection structure 11 that can ensure transmission of detection information of thesensors 12 to theterminal unit 20 while reducing complexity between thesensors 12 and theterminal unit 20. - In addition, in the
sensor connection structure 11 according to this embodiment, each of theconnection boxes 13 is connected to one of thesensors 12 located at the left of themain pipe 2 and one of thesensors 12 located at the right of thesensors 12. Thus, as compared to a case where two sensors at the right of the main pipe are connected to one connection box, for example, complexity of wires (pipes) between thesensors 12 and theconnection boxes 13 can be reduced. - In the
sensor connection structure 11 according to this embodiment, since theterminal unit 20 is disposed in themain pipe 2, complexity of wires (pipes) between theterminal unit 20 and theconnection boxes 13 can be reduced. Moreover, since theterminal unit 20 is disposed above theconnection boxes 13 and connected to the uppermost one of the fourconnection boxes 13, complexity of wires (pipes) described above can be reduced, as compared to a case where the terminal unit is disposed between the connection boxes, for example. In addition, since theterminal unit 20 is disposed above the fourconnection boxes 13, theterminal unit 20 can be easily connected to thecentral management device 30. - A second embodiment of the present application will be described with reference to
FIG. 4 . In this embodiment, the attachment positions ofconnection boxes 13 and aterminal unit 20 are changed from those in thesensor connection structure 11 according to the first embodiment. - Specifically, in the second embodiment, the four
connection boxes 13 and theterminal unit 20 are attached to the rear side of astrut 9 b. That is, theconnection boxes 13 and theterminal unit 20 are disposed at the rear side of amain pipe 2 with thestrut 9 b interposed therebetween. The fourconnection boxes 13 are arranged along an axis of thestrut 9 b at the rear side of thestrut 9 b, and are connected to each other in series throughelectric wire pipes 15. In a manner similar to the first embodiment, each of the fourconnection boxes 13 is connected to twosensors 12 disposed at the left and right of themain pipe 2 throughelectric wire pipes 14. Theterminal unit 20 is disposed above the fourconnection boxes 13 at the rear side of thestrut 9 b. In a manner similar to the first embodiment, theterminal unit 20 is connected to the uppermost one of the fourconnection boxes 13 through an electric wire pipe, and is connected to a central management device (not shown) through anelectric wire pipe 31. - In the
sensor connection structure 11 according to the second embodiment, theconnection boxes 13 and theterminal unit 20 are attached to the rear side of thestrut 9 b. Thus, theconnection boxes 13, theterminal unit 20, and the 14 and 15 are not easily affected by heat caused by a manifold 1. That is, although the manifold 1 in which high-temperature drain flows has a relatively high temperature, transfer of this high temperature to theelectric wire pipes connection boxes 13, theterminal unit 20, and other components can be reduced. In addition, since theconnection boxes 13 and theterminal unit 20 are attached to the rear side of thestrut 9 b, theconnection boxes 13 and theterminal unit 20 can be disposed at locations where valves such as steam traps 4 are not disposed, and thus, maintenance of theterminal unit 20 and other components can be easily performed. - The embodiments described above may be configured as follows.
- For example, although the four
connection boxes 13 are disposed in the first embodiment, eightconnection boxes 13 may be disposed as illustrated inFIG. 5 . That is, eightconnection boxes 13 are connected to each other in series throughelectric wire pipes 15. Each of the eightconnection boxes 13 are connected to onesensor 12 located at the left or right of amain pipe 2 through anelectric wire pipe 14. That is, the same number ofconnection boxes 13 as that of thesensors 12 are provided, and are connected to thesensors 12 in one-to-one correspondence. - In the embodiments described above, the
terminal unit 20 may be disposed at a location except themain pipe 2 and thestrut 9 b. For example, the terminal unit may be disposed on the upper surface of thebase plate 9 a of the attachment base 9 and connected to the lowermost one of theconnection boxes 13 through an electric wire pipe, or may be attached to a structure (e.g., wall or column) except the manifold 1 and connected to one of theconnection boxes 13 through an electric wire pipe. - In the embodiments described above, in the manifold 1, drain flows from the
branch pipes 3 into themain pipe 2 and is collected therein. Thesensor connection structure 11 according to the present application is also similarly applicable to a manifold in which drain branches from a main pipe to branch pipes. In this case, the branch pipes are also provided with valves to which sensors are attached. - In the embodiments described above, the numbers of the
branch pipes 3, thesensors 12, and theconnection boxes 13 are not limited to the numbers described above, and fluid except drain may flow in the manifold 1. - The technique disclosed in the present application is useful for a sensor connection structure in which a plurality of sensors disposed in a pipe unit including a main pipe and a plurality of branch pipes are connected to a terminal unit.
Claims (4)
Applications Claiming Priority (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2015139134 | 2015-07-10 | ||
| JP2015-139134 | 2015-07-10 | ||
| PCT/JP2016/068973 WO2017010273A1 (en) | 2015-07-10 | 2016-06-27 | Sensor connection structure |
Related Parent Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2016/068973 Continuation WO2017010273A1 (en) | 2015-07-10 | 2016-06-27 | Sensor connection structure |
Publications (2)
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|---|---|
| US20180119845A1 true US20180119845A1 (en) | 2018-05-03 |
| US10655755B2 US10655755B2 (en) | 2020-05-19 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US15/851,581 Active US10655755B2 (en) | 2015-07-10 | 2017-12-21 | Sensor connection structure |
Country Status (7)
| Country | Link |
|---|---|
| US (1) | US10655755B2 (en) |
| EP (1) | EP3318942B1 (en) |
| JP (1) | JP6130984B1 (en) |
| CN (1) | CN107710090A (en) |
| MY (1) | MY179631A (en) |
| SG (1) | SG11201800037WA (en) |
| WO (1) | WO2017010273A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US20210247075A1 (en) * | 2018-02-05 | 2021-08-12 | Alto-Shaam, Inc. | Steam Generation and Drain System for Modular Oven |
Families Citing this family (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP7044628B2 (en) * | 2018-05-14 | 2022-03-30 | 株式会社テイエルブイ | Fluid trap clogging detection system and clogging detection method |
| IT202300022269A1 (en) * | 2023-10-24 | 2025-04-24 | Imc Service S R L | MONITORING SYSTEM FOR A STEAM DISTRIBUTION SYSTEM AND STEAM DISTRIBUTION SYSTEM INCLUDING THE MONITORING SYSTEM |
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Also Published As
| Publication number | Publication date |
|---|---|
| EP3318942A4 (en) | 2018-07-25 |
| WO2017010273A1 (en) | 2017-01-19 |
| CN107710090A (en) | 2018-02-16 |
| US10655755B2 (en) | 2020-05-19 |
| SG11201800037WA (en) | 2018-02-27 |
| EP3318942B1 (en) | 2019-12-04 |
| MY179631A (en) | 2020-11-11 |
| JPWO2017010273A1 (en) | 2017-07-20 |
| EP3318942A1 (en) | 2018-05-09 |
| JP6130984B1 (en) | 2017-05-17 |
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